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个人信息Personal Information
教授
博士生导师
硕士生导师
主要任职:盘锦校区食品与环境学院副院长 Vice Dean School of Food and Environment Panjin Campus Dalian University of Technology
性别:女
毕业院校:大连理工大学
学位:博士
所在单位:化工海洋与生命学院
学科:环境工程. 环境科学
办公地点:环境学院 B 505
化工 海洋与生命学院 D05-201
联系方式:0427-2631799;
A novel way to rapidly monitor microplastics in soil by hyperspectral imaging technology and chemometrics
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论文类型:期刊论文
发表时间:2018-07-01
发表刊物:ENVIRONMENTAL POLLUTION
收录刊物:SCIE
卷号:238
页面范围:121-129
ISSN号:0269-7491
关键字:Hyperspectral imaging; Support vector machine; Soil; Microplastics; Rapid detection
摘要:Hyperspectral imaging technology has been investigated as a possible way to detect microplastics contamination in soil directly and efficiently in this study. Hyperspectral images with wavelength range between 400 and 1000 nm were obtained from soil samples containing different materials including microplastics, fresh leaves, wilted leaves, rocks and dry branches. Supervised classification algorithms such as support vector machine (SVM), mahalanobis distance (MD) and maximum likelihood (ML) algorithms were used to identify microplastics from the other materials in hyperspectral images. To investigate the effect of particle size and color, white polyethylene (PE) and black PE particles extracted from soil with two different particle size ranges (1-5 mm and 0.5-1 mm) were studied in this work. The results showed that SVM was the most applicable method for detecting white PE in soil, with the precision of 84% and 77% for PE particles in size ranges of 1-5 mm and 0.5-1 mm respectively. The precision of black PE detection achieved by SVM were 58% and 76% for particles of 1-5 mm and 0.5-1 mm respectively. Six kinds of household polymers including drink bottle, bottle cap, rubber, packing bag, clothes hanger and plastic clip were used to validate the developed method, and the classification precision of polymers were obtained from 79% to 100% and 86%-99% for microplastics particle 1-5 mm and 0.5-1 mm respectively. The results indicate that hyperspectral imaging technology is a potential technique to determine and visualize the microplastics with particle size from 0.5 to 5 mm on soil surface directly. (C) 2018 Elsevier Ltd. All rights reserved.
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